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Open AccessJournal ArticleDOI

Observation of topological valley modes in an elastic hexagonal lattice

Javier Vila, +2 more
- 17 Oct 2017 - 
- Vol. 96, Iss: 13, pp 134307
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TLDR
In this article, the experimental observation of topologically protected edge waves in a two-dimensional elastic hexagonal lattice was reported, where the lattice is designed to feature $K$-point Dirac cones that are well separated from the other numerous elastic wave modes characterizing this continuous structure.
Abstract
We report on the experimental observation of topologically protected edge waves in a two-dimensional elastic hexagonal lattice The lattice is designed to feature $K$-point Dirac cones that are well separated from the other numerous elastic wave modes characterizing this continuous structure We exploit the arrangement of localized masses at the nodes to break mirror symmetry at the unit-cell level, which opens a frequency band gap This produces a nontrivial band structure that supports topologically protected edge states along the interface between two realizations of the lattice obtained through mirror symmetry Detailed numerical models support the investigations of the occurrence of the edge states, while their existence is verified through full-field experimental measurements The test results show the confinement of the topologically protected edge states along predefined interfaces and illustrate the lack of significant backscattering at sharp corners Experiments conducted on a trivial waveguide in an otherwise uniformly periodic lattice reveal the inability of a perturbation to propagate and its sensitivity to backscattering, which suggests the superior waveguiding performance of the class of nontrivial interfaces investigated herein

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Citations
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Journal ArticleDOI

A Silicon-on-Insulator Slab for Topological Valley Transport

TL;DR: This work realizes topologically protected, robust and unidirectional coupling as well as optical transport on a silicon-on-insulator platform by exploiting the valley degree of freedom, and shows the prototype of robustly integrated devices.
Journal ArticleDOI

Topological Sound

TL;DR: In this article, the authors review the latest efforts to explore with sound waves topological states of quantum matter in two-and three-dimensional systems where spin and valley degrees of freedom appear as highly novel ingredients to tailor the flow of sound in the form of one-way edge modes and defect-immune protected acoustic waves.
Journal ArticleDOI

On-chip valley topological materials for elastic wave manipulation.

TL;DR: By using a micromanufacturing technology, valley topological materials are fabricated on silicon chips, which allows the observation of gyral valley states and valley edge transport for elastic waves, and may enable the creation of on-chip high-performance micro-ultrasonic materials and devices.
Journal ArticleDOI

Nonreciprocity in acoustic and elastic materials

TL;DR: In this article, the authors review how reciprocity breaks down in materials with momentum bias, structured space-dependent and time-dependent constitutive properties, and constitutive nonlinearity, and report on recent advances in the modelling and fabrication of these materials, as well as on experiments demonstrating nonreciprocal acoustic and elastic wave propagation therein.
Journal ArticleDOI

Elastic Higher-Order Topological Insulator with Topologically Protected Corner States.

TL;DR: The topological shape-dependent corner states open a new route for the design of the topologically protected and reconfigurable 0D localized resonances and provide an excellent platform for the topological transformation of the elastic energy among 2D bulk, 1D edge, and 0D corner modes.
References
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Book ChapterDOI

I and J

Book

Wave propagation in elastic solids

TL;DR: In this article, the linearized theory of elasticity was introduced and the elasticity of a one-dimensional motion of an elastic continuum was modeled as an unbound elastic continuum.
Book ChapterDOI

Topology of Bands in Solids: From Insulators to Dirac Matter

TL;DR: In this paper, the topological properties of these vector bundles provide new characteristics of the corresponding electronic phases, and some of these properties in the case of (topological) insulators and semi-metals are reviewed.
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